Pneumatic diaphragm pump for cleaning agent processing
By designing the anti-shake mechanism and connection mechanism of the diaphragm pump in the pneumatic diaphragm pump, the problems of pipeline shaking and dust entry caused by high-power fluid transmission are solved, and the stable operation of the pump and the protection of internal components are achieved.
Patent Information
- Application Number
- CN202510067183.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-16
- Publication Date
- 2025-05-13
AI Technical Summary
Existing pneumatic diaphragm pumps may cause pipe shaking during high-power fluid transmission, which may cause cracks on the outer wall and fluid leakage for a long time, and dust or debris are prone to enter the inside of the pump during removal, resulting in damage to components or blockage of the pipe.
A pneumatic diaphragm pump including a diaphragm pump pipe anti-shake mechanism and a diaphragm pump pipe connection mechanism are designed. The anti-shake mechanism drives the rotating column and rotary wheel through the motor-driven bevel teeth and gear system, pushes the L-shaped push and pull block to expand, and the slide rod drives the push and pull block to slide on the inner wall of the slide chute, and the positioning clamp is close to the outer wall of the through-pipe to provide reinforcement; during disassembly, reverse operation prevents dust from entering. The connection mechanism drives the inner support plate to closely adhere to the outer wall of the connection pipe through the linkage between the hydraulic push rod and the push-pull pipe to ensure the stability of the connection.
It effectively reduces the phenomenon of pipe shaking caused by high-power fluid transmission, avoids the risk of cracks and fluid leakage on the outer wall of the diaphragm pump, and prevents dust or debris from entering the pump during removal and starting, protecting internal components and preventing pipeline blockage.
Smart Images

Figure CN119982459A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of detergent processing, in particular to a pneumatic diaphragm pump for detergent processing. Background Art
[0002] A pneumatic diaphragm pump is a pump that uses compressed air as a power source to drive the diaphragm to reciprocate through pneumatic components to achieve fluid delivery. The pump has a simple structure, is easy to maintain, and has good self-priming ability. It is particularly suitable for conveying occasions containing solid particles, high viscosity or corrosive media. In the detergent processing process, the pneumatic diaphragm pump can effectively convey various detergent raw materials to ensure the continuity and stability of the production process;
[0003] According to the patent document: CN220302307U, a pneumatic diaphragm pump for detergent processing is disclosed, which relates to the technical field of pneumatic diaphragm pumps, including an overall structure and a positioning structure, wherein the positioning structure is located at the front and rear position of one side of the top of the overall structure; the overall structure includes a pump body, and connecting pieces are fixedly connected to the two sides of the bottom of the pump body, and a supporting base plate is slidably connected to the bottom center of the connecting piece, and a round rod is slidably connected to the front and rear positions of the top of the supporting base plate, and a spring is sleeved on the outer surface of the round rod, and a fixing piece is fixedly connected to the center of the outer surface of one side of the pump body. In the utility model, the arrangement of the round rod, the spring, and the supporting base plate makes it convenient for the user to transport the pump body, so that the user can carry the pump body by pushing and pulling, thereby reducing the user's labor, and the cooperation between the round rod and the spring makes it possible to limit the connecting piece and the pump body.
[0004] After the pneumatic diaphragm pump's pipeline is connected to the pipeline, since only one end of the pneumatic diaphragm pump's pipeline is connected to the pipeline, high-power fluid transmission during use may cause part of the diaphragm pump's pipeline to shake, which may cause cracks on the outer wall of the diaphragm pump over a long period of time, and may even cause fluid leakage. In addition, when dismantling and starting the diaphragm pump, since the diaphragm pump's pipeline is equipped with a blocking structure, dust or debris may enter the diaphragm pump through the pipeline after disassembly, which may cause damage to the internal components of the diaphragm pump or blockage of the diaphragm pump pipeline. Summary of the invention
[0005] The object of the present invention is to provide a pneumatic diaphragm pump for cleaning agent processing, so as to solve the problem proposed in the prior art that high-power fluid transmission may cause shaking of part of the pipeline of the diaphragm pump, which may cause cracks to appear on the outer wall of the diaphragm pump over a long period of time, and may seriously cause fluid leakage. In addition, when the diaphragm pump is dismantled and started, since the pipeline of the diaphragm pump is provided with a blocking structure, dust or debris may enter the interior of the diaphragm pump through the pipeline after disassembly, which may cause damage to the internal components of the diaphragm pump or blockage of the diaphragm pump pipeline.
[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a pneumatic diaphragm pump for cleaning agent processing, comprising a pneumatic diaphragm pump placement frame, the top and bottom of the inner wall of the pneumatic diaphragm pump placement frame are respectively fixedly connected with fluid pipes, the left and right sides of the inner sides of the two fluid pipes are fixedly connected with diaphragm pump pipeline connection mechanisms, the inner sides of the upper and lower groups of the diaphragm pump pipeline connection mechanisms are fixedly connected with diaphragm pump pipeline anti-shake mechanisms, and the inner sides of the upper and lower groups of the diaphragm pump pipeline anti-shake mechanisms are fixedly connected with pneumatic diaphragm pumps;
[0007] The two fluid pipes each include a fluid pipe body, the left and right sides of the inner sides of the outer walls of the two fluid pipe bodies are fixedly connected with fluid pipe connection pipes, the opposite ends of the two fluid pipe bodies are fixedly connected with through pipes, and the left and right sides of the bottom of the outer walls of the bottom fluid pipe bodies are respectively fixedly connected with placement racks;
[0008] The pneumatic diaphragm pump comprises a pneumatic diaphragm pump body, and the inner walls on the left and right sides of the pneumatic diaphragm pump body are fixedly connected with pneumatic diaphragm pump through pipes.
[0009] Preferably, the diaphragm pump pipeline anti-shake mechanism includes a pipeline connecting plate, the inner wall of the pipeline connecting plate is fixedly connected to one side of the outer wall of the pneumatic diaphragm pump through pipe, the outer wall of the pipeline connecting plate is fixedly connected to the pipeline connecting outer plate, the inner walls of the pipeline connecting plate and the pipeline connecting outer plate are provided with an anti-shake mechanism main body, and the inner walls of the pipeline connecting plate and the pipeline connecting outer plate are fixedly connected to one side of the outer wall of the pneumatic diaphragm pump through pipe.
[0010] Preferably, the pipe connecting plate includes a pipe connecting body, which is provided with a pipe connecting groove in a circular array on one side of the inner wall of the pipe connecting outer plate, and the pipe connecting body is fixedly connected with a long strip sliding rod in a circular array on one side of the inner wall of the pipe connecting outer plate.
[0011] Preferably, the pipeline connecting outer disk includes a pipeline connecting outer disk main body, and a pipeline connecting outer disk slide groove is provided in an annular array on the side of the inner wall of the pipeline connecting outer disk main body away from the pipeline connecting disk, and a motor is fixedly connected to the side of the pipeline connecting outer disk main body away from the pipeline connecting disk, and a conical gear is fixedly connected to the output end of the motor.
[0012] Preferably, the anti-shake mechanism body includes a turntable, a side of the turntable away from the pipe connecting plate is fixedly connected to a turntable post, the outer wall of the turntable post extends to the inner wall of the pipe connecting outer plate, the turntable extends to the side of the inner wall of the pipe connecting outer plate and is fixedly connected to a gear, the outer wall of the gear is meshed with the outer wall of the conical tooth, and an annular array of arc grooves is opened on the side of the turntable away from the turntable post, and the inner walls of multiple arc grooves are slidably connected to sliding rods.
[0013] Preferably, the tops of the multiple sliding rods are fixedly connected with L-shaped push-pull blocks, the outer sides of the multiple sliding rods are opened with push-pull block grooves, the inner walls of the multiple pushing-pull block grooves are slidably connected to the outer walls of the long sliding rods, the outer walls of the multiple L-shaped push-pull blocks are slidably connected to the inner walls of the pipe connection grooves, the tops of the multiple L-shaped push-pull blocks extend to the inner wall of the pipe connection body and are fixedly connected with positioning splint connecting blocks, and the inner sides of the multiple positioning splint connecting blocks are fixedly connected with positioning splints.
[0014] Preferably, the bottoms of the multiple L-shaped push-pull blocks are rotatably connected to a rotating rod on one side away from the sliding rod, the rotating rods are rotatably connected to a push-pull plate on one side away from the L-shaped push-pull blocks, the outer walls of the multiple push-pull plates are slidably connected to the inner wall of the pipeline-connected outer disk slide groove, and the inner sides of the multiple push-pull plates are fixedly connected to a fan-shaped baffle.
[0015] Preferably, the diaphragm pump pipeline connection mechanism comprises a connection mechanism shell, a connection plate is fixedly connected to the inner wall of the connection mechanism shell on one side close to the pipeline connection outer plate, and the inner wall of the connection mechanism shell is hollow.
[0016] Preferably, the connecting plate includes a connecting plate body, a connecting plate slide groove is opened in a circular array on the side of the connecting plate body close to the pipeline connecting outer plate, a hydraulic push rod is fixedly connected to the side of the connecting plate body close to the pipeline connecting outer plate, a push-pull tube is fixedly connected to the top of the hydraulic push rod, and a push-pull tube rotating rod is rotatably connected to the bottom of the outer wall of the push-pull tube in a circular array.
[0017] Preferably, the push-pull tube rotating rods are rotatably connected to the push-pull columns on the side away from the push-pull tubes, the push-pull columns have one end away from the push-pull tube rotating rods that extends to the outer wall of the connecting plate body and are fixedly connected to the expansion vertical plates, the inner sides of the expansion vertical plates are fixedly connected to the expansion rods on the side away from the connecting plate body, and the inner sides of the expansion rods are fixedly connected to the inner support plates.
[0018] Compared with the prior art, the present invention has the following beneficial effects:
[0019] 1. The present application effectively reduces the pipeline shaking phenomenon caused by high-power fluid transmission by providing a diaphragm pump pipeline anti-shake mechanism, thereby avoiding the risk of cracks on the outer wall of the diaphragm pump and fluid leakage. In addition, the setting of the anti-shake mechanism also ensures that when the diaphragm pump is removed and started, dust or debris will not enter the diaphragm pump through the pipeline, thereby protecting the internal components of the diaphragm pump from damage and preventing the problem of pipeline blockage. Specifically, when the pneumatic diaphragm pump through-tube is connected to the fluid pipe, the outer wall of the fluid pipe connecting pipe is inserted into the diaphragm pump pipeline anti-shake mechanism The motor starts to drive the conical teeth to rotate, driving the rotating column and the turntable to rotate on the inner wall of the pipe connecting plate. The rotation of the turntable pushes the L-shaped push-pull block to expand and contract, and the sliding rod drives the push-pull block to slide on the inner wall of the slide groove. Multiple push-pull blocks move inward to make the positioning splint close to the outer wall of the through pipe, thereby reinforcing the through pipe of the pneumatic diaphragm pump. The through pipe is more stable when in use and does not need to be reinforced during disassembly. The motor reverses to drive the conical teeth to make the turntable rotate in the opposite direction, and the push-pull block drives the positioning splint to expand outward. The rotating rod rotates to push the push-pull plate to slide on the inner wall of the slide groove, and the fan-shaped baffle seals the bottom of the rotating column to prevent dust or debris from entering.
[0020] 2. The present application provides a more stable connection method for the connection between the pneumatic diaphragm pump and the fluid pipe and the through pipe by providing a diaphragm pump pipeline connection mechanism. The use of the connection plate makes the connection between the connection plate body and the pipeline tighter, thereby effectively preventing loosening or falling off that may occur under high-pressure working environment. Specifically, when connecting the pneumatic diaphragm pump through pipe and the fluid pipe connection pipe, the connection pipe is inserted into the inner wall of the outer shell, and the hydraulic push rod is started to move the push-pull pipe upward and drive the rotating rod to pull the push-pull column to shrink the inner support plate and close to the outer wall of the connection pipe. Then, the connecting block is put on the outer wall of the outer shell and the connection pipe and fixed with bolts. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a schematic diagram of the main body three-dimensional structure of a pneumatic diaphragm pump for detergent processing of the present invention;
[0022] Figure 2 It is a schematic diagram of the three-dimensional separation structure of the main part of a pneumatic diaphragm pump for detergent processing of the present invention;
[0023] Figure 3 It is a schematic diagram of the three-dimensional separation structure of the main part of a pneumatic diaphragm pump for detergent processing of the present invention;
[0024] Figure 4 It is a schematic diagram of the three-dimensional structure of a starting diaphragm pump of a pneumatic diaphragm pump for detergent processing according to the present invention;
[0025] Figure 5 It is a schematic diagram of the three-dimensional separation structure of the diaphragm pump pipeline anti-shake mechanism of the pneumatic diaphragm pump for detergent processing of the present invention;
[0026] Figure 6It is a schematic diagram of the three-dimensional structure of a connection plate of a pneumatic diaphragm pump for detergent processing according to the present invention;
[0027] Figure 7 It is a schematic diagram of the main body three-dimensional structure of the anti-shake mechanism of the pneumatic diaphragm pump for detergent processing of the present invention;
[0028] Figure 8 It is a schematic diagram of the three-dimensional structure of the connecting outer disc of a pneumatic diaphragm pump for detergent processing of the present invention;
[0029] Fig. 9 It is a three-dimensional structural schematic diagram of a diaphragm pump pipeline connection mechanism of a pneumatic diaphragm pump for detergent processing according to the present invention;
[0030] Fig.10 The present invention is a schematic diagram of the three-dimensional structure of a connecting plate main body of a pneumatic diaphragm pump for detergent processing.
[0031] Numbers in the figure: 1. Pneumatic diaphragm pump placement frame; 2. Fluid pipe; 21. Fluid pipe body; 22. Fluid pipe connection pipe; 23. Through pipe; 24. Placement frame; 3. Pneumatic diaphragm pump; 31. Pneumatic diaphragm pump body; 32. Pneumatic diaphragm pump through pipe; 4. Diaphragm pump pipeline anti-shake mechanism; 41. Pipe connection plate; 411. Pipe connection body; 412. Pipe connection slide; 413. Long strip slide bar; 42. Anti-shake mechanism body; 421. Turntable; 422. Rotating column; 423. Arc groove; 424. Gear; 425. Slide bar; 426. L-shaped push-pull block; 427. Push-pull block slide; 42 8. Positioning splint connection block; 429. Positioning splint; 4210. Rotating rod; 4211. Push-pull plate; 4212. Fan-shaped baffle; 43. Pipeline connected to outer disk; 431. Pipeline connected to outer disk body; 432. Pipeline connected to outer disk slide; 433. Motor; 434. Conical teeth; 5. Diaphragm pump pipeline connection mechanism; 51. Connection mechanism housing; 52. Connection plate; 521. Connection plate body; 522. Connection plate slide; 523. Hydraulic push rod; 524. Push-pull pipe; 525. Push-pull pipe rotating rod; 526. Push-pull column; 527. Retractable and expandable vertical plate; 528. Retractable and expandable rod; 529. Inner support plate. DETAILED DESCRIPTION
[0032] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0033] Example: Figure 1As shown, the present invention provides a technical solution of a pneumatic diaphragm pump for cleaning agent processing, including a pneumatic diaphragm pump placement frame 1, the top and bottom of the inner wall of the pneumatic diaphragm pump placement frame 1 are respectively fixedly connected with fluid tubes 2, the left and right sides of the inner sides of the two fluid tubes 2 are fixedly connected with diaphragm pump pipeline connection mechanisms 5, the inner sides of the upper and lower groups of diaphragm pump pipeline connection mechanisms 5 are fixedly connected with diaphragm pump pipeline anti-shake mechanisms 4, and the inner sides of the upper and lower groups of diaphragm pump pipeline anti-shake mechanisms 4 are fixedly connected with pneumatic diaphragm pumps 3.
[0034] See also Figure 2-8The two fluid pipes 2 each include a fluid pipe body 21, and the left and right sides of the inner sides of the outer walls of the two fluid pipe bodies 21 are fixedly connected with fluid pipe connecting pipes 22, and the opposite ends of the two fluid pipe bodies 21 are fixedly connected with through pipes 23, and the left and right sides of the bottom of the outer wall of the bottom fluid pipe body 21 are respectively fixedly connected with placement racks 24, and the pneumatic diaphragm pump 3 includes a pneumatic diaphragm pump body 31, and the left and right inner walls of the pneumatic diaphragm pump body 31 are fixedly connected with pneumatic diaphragm pump through pipes 32, and the diaphragm pump pipeline anti-shake mechanism 4 includes a pipeline connecting plate 41, and the inner wall of the pipeline connecting plate 41 is fixedly connected to one side of the outer wall of the pneumatic diaphragm pump through pipe 32, and the outer wall of the pipeline connecting plate 41 is fixedly connected with a pipeline connecting outer plate 43, and the pipeline connecting plate 41 and the pipeline connecting outer plate The inner wall of 43 is provided with an anti-shake mechanism body 42, the inner wall of the pipeline connection disk 41 and the pipeline connection outer disk 43 are fixedly connected to one side of the outer wall of the pneumatic diaphragm pump through pipe 32, the pipeline connection disk 41 includes a pipeline connection body 411, and the pipeline connection body 411 is provided with a pipeline connection groove 412 in a circular array on one side of the inner wall of the pipeline connection outer disk 43, and the pipeline connection body 411 is fixedly connected with a long strip slide bar 413 in a circular array on one side of the inner wall of the pipeline connection outer disk 43, and the pipeline connection outer disk 43 includes a pipeline connection outer disk body 431, and the inner wall of the pipeline connection outer disk body 431 is provided with a pipeline connection outer disk groove 432 in a circular array on one side away from the pipeline connection disk 41, and the pipeline connection outer disk body 431 is provided with a pipeline connection outer disk groove 432 on one side away from the pipeline connection disk 41 A motor 433 is fixedly connected, and a conical tooth 434 is fixedly connected to the output end of the motor 433. The anti-shake mechanism body 42 includes a turntable 421. A rotating column 422 is fixedly connected to the side of the turntable 421 away from the pipeline connection disk 41. The outer wall of the rotating column 422 extends to the inner wall of the pipeline connection outer disk 43. A gear 424 is fixedly connected to the side of the rotating column 422 extending to the inner wall of the pipeline connection outer disk 43. The outer wall of the gear 424 is meshed with the outer wall of the conical tooth 434. An arc groove 423 is provided in a circular array on the side of the turntable 421 away from the rotating column 422. The inner walls of multiple arc grooves 423 are slidably connected to sliding rods 425. The tops of multiple sliding rods 425 are fixedly connected to L-shaped push-pull blocks 426. The outer sides of multiple push-pull block slide grooves 423 are provided 7. The inner walls of the plurality of push-pull block slots 427 are all slidably connected to the outer walls of the long strip slide bar 413, the outer walls of the plurality of L-shaped push-pull blocks 426 are all slidably connected to the inner walls of the pipeline connection slots 412, the tops of the plurality of L-shaped push-pull blocks 426 extend to the inner walls of the pipeline connection body 411 and are all fixedly connected with the positioning clamping plate connection blocks 428, the inner sides of the plurality of positioning clamping plate connection blocks 428 are all fixedly connected with the positioning clamping plates 429, the bottoms of the plurality of L-shaped push-pull blocks 426 are all rotatably connected with the rotating rods 4210 on the sides away from the slide bar 425, the plurality of rotating rods 4210 are all rotatably connected with the push-pull plates 4211 on the sides away from the L-shaped push-pull blocks 426, the outer walls of the plurality of push-pull plates 4211 are all slidably connected to the inner walls of the pipeline connection outer disk slots 432,The inner sides of the plurality of push-pull plates 4211 are all fixedly connected with fan-shaped baffles 4212;
[0035] When the pneumatic diaphragm pump through pipe 32 of the pneumatic diaphragm pump body 31 is connected with the fluid pipe connecting pipe 22 of the fluid pipe body 21, the outer wall of the fluid pipe connecting pipe 22 is inserted into the inner wall of the diaphragm pump pipeline anti-shake mechanism 4 through the diaphragm pump pipeline connecting mechanism 5. At this time, the motor 433 on the inner wall of the pipeline connecting outer disk 43 starts the transmission bevel gear 434 to rotate. After the bevel gear 434 rotates, the meshing gear 424 drives the rotating column 422 and the rotating disk 421 to rotate on the inner wall of the pipeline connecting disk 41. When the disk 421 rotates, the arc groove 423 pushes the slide bar 425 to drive the L-shaped push-pull block 426 to expand and contract, and the L-shaped push-pull block 426 slides on the inner wall of the long slide bar 413 and the pipeline connecting slide groove 412. When the multiple L-shaped push-pull blocks 426 move inward, the inner side of the positioning clamping plate 429 is close to the outer wall of the pneumatic diaphragm pump through pipe 32, thereby reinforcing the pneumatic diaphragm pump through pipe 32, so that the pneumatic diaphragm pump through pipe 32 is more stable when the pneumatic diaphragm pump body 31 is in use;
[0036] In addition, when the pneumatic diaphragm pump body 31 is disassembled, there is no need to reinforce the pneumatic diaphragm pump pipe 32. The motor 433 is started to reversely drive the conical gear 434, so that the turntable 421 rotates in the opposite direction, and the multiple L-shaped push-pull blocks 426 drive the positioning clamping plate 429 to expand outward. While the multiple L-shaped push-pull blocks 426 expand outward, they drive the rotating rod 4210 to rotate, thereby pushing the multiple push-pull plates 4211 to slide on the inner wall of the pipeline connecting the outer disk slide groove 432, and then the multiple fan-shaped baffles 4212 are spliced together to seal the bottom of the rotating column 422, thereby preventing dust or debris from entering the interior of the pneumatic diaphragm pump pipe 32.
[0037] See also Figure 9-10The diaphragm pump pipeline connection mechanism 5 includes a connection mechanism shell 51, and a connection plate 52 is fixedly connected to the inner wall of the connection mechanism shell 51 on one side close to the pipeline connection outer disk 43. The inner wall of the connection mechanism shell 51 is hollowed out, and the connection plate 52 includes a connection plate body 521. A connection plate slide groove 522 is provided in a circular array on the side of the connection plate body 521 close to the pipeline connection outer disk 43. A hydraulic push rod 523 is fixedly connected to the side of the connection plate body 521 close to the pipeline connection outer disk 43. The top of the hydraulic push rod 523 is fixedly connected to the push-pull pipe 52 4. The outer wall bottom of the push-pull tube 524 is rotatably connected to a push-pull tube rotating rod 525 in an annular array. The side of the push-pull tube rotating rods 525 away from the push-pull tube 524 is rotatably connected to a push-pull column 526. The ends of the push-pull columns 526 away from the push-pull tube rotating rod 525 extend to the outer wall of the connecting plate body 521 and are fixedly connected to a retractable and expanding vertical plate 527. The inner side of the multiple retractable and expanding vertical plates 527 away from the connecting plate body 521 is fixedly connected to a retractable and expanding rod 528. The inner sides of the multiple retractable and expanding rods 528 are fixedly connected to an inner support plate 529.
[0038] When it is necessary to connect the pneumatic diaphragm pump pipe 32 with the fluid pipe connecting pipe 22, the fluid pipe connecting pipe 22 is inserted into the inner wall of the connecting mechanism housing 51, so that the inner sides of the multiple inner support plates 529 are on the outer wall of the fluid pipe connecting pipe 22. At this time, the hydraulic push rod 523 is started to push the push-pull pipe 524 to move upward. The push-pull pipe 524 moves upward to drive the multiple push-pull pipe rotating rods 525 on the outer wall to rotate and then pull the push-pull column 526 to shrink inward, so that the multiple inner support plates 529 are tightly attached to the outer wall of the fluid pipe connecting pipe 22. After that, the connecting block can be put on the outer wall of the connecting mechanism housing 51 and the fluid pipe connecting pipe 22, and the two connecting blocks are fixedly connected with bolts. After completing the above steps, the entire connection process is basically completed. In order to ensure the stability of the connection, the thrust of the hydraulic push rod 523 can be further adjusted to ensure that there is no gap between the inner support plate 529 and the fluid pipe connecting pipe 22, thereby achieving a sealing effect.
[0039] In practical applications, this design not only improves the convenience of connection, but also enhances the reliability of connection. Due to the use of the hydraulic push rod 523, the operator can easily complete the connection by controlling the hydraulic system without excessive physical force;
[0040] Through the linkage mechanism of the hydraulic push rod 523 and the push-pull tube 524, a fast, stable and reliable connection method is achieved. This design not only improves work efficiency, but also ensures stability and safety in various working environments.
[0041] Working principle: when the pneumatic diaphragm pump through pipe 32 of the pneumatic diaphragm pump body 31 is connected with the fluid pipe connecting pipe 22 of the fluid pipe body 21, the outer wall of the fluid pipe connecting pipe 22 is inserted into the inner wall of the diaphragm pump pipe anti-shake mechanism 4 through the diaphragm pump pipe connecting mechanism 5, and at this time, the motor 433 of the inner wall of the pipe connecting outer disk 43 starts the transmission bevel gear 434 to rotate, and after the bevel gear 434 rotates, the meshing gear 424 drives the rotating column 422 and the rotating disk 421 to rotate on the inner wall of the pipe connecting disk 41, and when the rotating disk 421 rotates, the sliding rod 425 is pressed against the arc groove 423 to drive the L-shaped push-pull block 426 to expand and contract, and the L-shaped push-pull block 426 slides on the inner wall of the long strip sliding rod 413 and the pipe connecting slide groove 412, and when multiple L-shaped push-pull blocks 426 move inward, the inner side of the positioning clamping plate 429 is close to the pneumatic diaphragm The outer wall of the pump tube 32 is reinforced to reinforce the pneumatic diaphragm pump tube 32, so that the pneumatic diaphragm pump main body 31 is more stable when the pneumatic diaphragm pump main body 31 is in use. In addition, when the pneumatic diaphragm pump main body 31 is disassembled, it is not necessary to reinforce the pneumatic diaphragm pump tube 32 at this time. The motor 433 is started to drive the conical gear 434 in the reverse direction, so that the turntable 421 rotates in the reverse direction, and the multiple L-shaped push-pull blocks 426 drive the positioning clamping plate 429 to expand outward. The multiple L-shaped push-pull blocks 426 expand outward and drive the rotating rod 4210 to rotate, thereby pushing the multiple push-pull plates 4211 to slide on the inner wall of the pipeline connecting the outer disk slide groove 432, so that the multiple fan-shaped baffles 4212 are spliced together to seal the bottom of the rotating column 422, thereby preventing dust or debris from entering the interior of the pneumatic diaphragm pump tube 32;
[0042] When it is necessary to connect the pneumatic diaphragm pump pipe 32 with the fluid pipe connecting pipe 22, the fluid pipe connecting pipe 22 is inserted into the inner wall of the connecting mechanism shell 51, so that the inner side of the multiple inner support plates 529 is on the outer wall of the fluid pipe connecting pipe 22. At this time, the hydraulic push rod 523 is started to push the push-pull pipe 524 to move upward. The push-pull pipe 524 moves upward to drive the multiple push-pull pipe rotating rods 525 on the outer wall to rotate and then pull the push-pull column 526 to shrink inward, so that the multiple inner support plates 529 are tightly attached to the outer wall of the fluid pipe connecting pipe 22. After that, the connecting block can be put on the outer wall of the connecting mechanism shell 51 and the fluid pipe connecting pipe 22, and the two connecting blocks are fixedly connected with bolts. After completing the above steps, the entire connection process is basically completed. In order to ensure the stability of the connection, the thrust of the hydraulic push rod 523 can be further adjusted to ensure that there is no gap between the inner support plate 529 and the fluid pipe connecting pipe 22, thereby achieving a sealing effect.
[0043] It will be apparent to those skilled in the art that the invention is not limited to the details of the exemplary embodiments described above and that the invention can be implemented in other specific forms without departing from the spirit or essential features of the invention. Therefore, the embodiments should be considered exemplary and non-limiting in all respects, and the scope of the invention is defined by the appended claims rather than the foregoing description, and it is intended that all variations falling within the meaning and scope of the equivalent elements of the claims be included in the invention. Any reference numeral in a claim should not be considered as limiting the claim to which it relates.
Claims
1. A pneumatic diaphragm pump for detergent processing, characterized in that: It comprises a pneumatic diaphragm pump placement frame (1), the top and bottom of the inner wall of the pneumatic diaphragm pump placement frame (1) are respectively fixedly connected with fluid pipes (2), the left and right sides of the inner sides of the two fluid pipes (2) are fixedly connected with diaphragm pump pipeline connection mechanisms (5), the inner sides of the upper and lower groups of diaphragm pump pipeline connection mechanisms (5) are fixedly connected with diaphragm pump pipeline anti-shake mechanisms (4), and the inner sides of the upper and lower groups of diaphragm pump pipeline anti-shake mechanisms (4) are fixedly connected with pneumatic diaphragm pumps (3); The two fluid pipes (2) each comprise a fluid pipe body (21), the left and right sides of the inner sides of the outer walls of the two fluid pipe bodies (21) are fixedly connected with fluid pipe connection pipes (22), the opposite ends of the two fluid pipe bodies (21) are fixedly connected with through pipes (23), and the left and right sides of the bottom of the outer walls of the bottom fluid pipe bodies (21) are respectively fixedly connected with placement racks (24); The pneumatic diaphragm pump (3) comprises a pneumatic diaphragm pump body (31), and pneumatic diaphragm pump passages (32) are fixedly connected to the inner walls on both the left and right sides of the pneumatic diaphragm pump body (31).
2. The pneumatic diaphragm pump for cleaning agent processing according to claim 1, characterized in that: The diaphragm pump pipeline anti-shake mechanism (4) comprises a pipeline connection disk (41), the inner wall of the pipeline connection disk (41) is fixedly connected to one side of the outer wall of the pneumatic diaphragm pump through pipe (32), the outer wall of the pipeline connection disk (41) is fixedly connected to a pipeline connection outer disk (43), the inner walls of the pipeline connection disk (41) and the pipeline connection outer disk (43) are provided with an anti-shake mechanism body (42), and the inner walls of the pipeline connection disk (41) and the pipeline connection outer disk (43) are fixedly connected to one side of the outer wall of the pneumatic diaphragm pump through pipe (32).
3. The pneumatic diaphragm pump for cleaning agent processing according to claim 2, characterized in that: The pipeline connection plate (41) comprises a pipeline connection body (411), and the pipeline connection body (411) is provided with pipeline connection sliding grooves (412) in a circular array on one side of the inner wall of the pipeline connection outer plate (43); and the pipeline connection body (411) is fixedly connected with a long strip sliding rod (413) in a circular array on one side of the inner wall of the pipeline connection outer plate (43).
4. The pneumatic diaphragm pump for cleaning agent processing according to claim 2, characterized in that: The pipeline connecting outer disk (43) comprises a pipeline connecting outer disk body (431), an inner wall of the pipeline connecting outer disk body (431) on a side away from the pipeline connecting disk (41) is provided with a pipeline connecting outer disk sliding groove (432) in an annular array, a side of the pipeline connecting outer disk body (431) away from the pipeline connecting disk (41) is fixedly connected to a motor (433), and an output end of the motor (433) is fixedly connected to a conical tooth (434).
5. The pneumatic diaphragm pump for cleaning agent processing according to claim 2, characterized in that: The anti-shake mechanism body (42) includes a rotating disk (421), and a rotating column (422) is fixedly connected to the side of the rotating disk (421) away from the pipeline connection disk (41), and the outer wall of the rotating column (422) extends to the inner wall of the pipeline connection outer disk (43), and a gear (424) is fixedly connected to the side of the rotating column (422) extending to the inner wall of the pipeline connection outer disk (43), and the outer wall of the gear (424) is meshed with the outer wall of the conical tooth (434), and a circular array of arc grooves (423) is opened on the side of the rotating disk (421) away from the rotating column (422), and the inner walls of multiple arc grooves (423) are slidably connected to sliding rods (425).
6. The pneumatic diaphragm pump for cleaning agent processing according to claim 5, characterized in that: The tops of the multiple sliding rods (425) are fixedly connected with L-shaped push-pull blocks (426), the outer sides of the multiple sliding rods (425) are opened with push-pull block grooves (427), the inner walls of the multiple pushing-pull block grooves (427) are slidably connected to the outer walls of the long sliding rods (413), the outer walls of the multiple L-shaped push-pull blocks (426) are slidably connected to the inner walls of the pipe connection grooves (412), the tops of the multiple L-shaped push-pull blocks (426) extend to the inner wall of the pipe connection body (411) and are fixedly connected with positioning splint connection blocks (428), and the inner sides of the multiple positioning splint connection blocks (428) are fixedly connected with positioning splints (429).
7. The pneumatic diaphragm pump for cleaning agent processing according to claim 6, characterized in that: The bottom of the multiple L-shaped push-pull blocks (426) are rotatably connected to a rotating rod (4210) on one side away from the sliding rod (425), and the rotating rods (4210) are rotatably connected to a push-pull plate (4211) on one side away from the L-shaped push-pull blocks (426). The outer walls of the multiple push-pull plates (4211) are slidably connected to the inner wall of the pipeline connecting outer disk slide groove (432), and the inner sides of the multiple push-pull plates (4211) are fixedly connected to a fan-shaped baffle (4212).
8. The pneumatic diaphragm pump for cleaning agent processing according to claim 1, characterized in that: The diaphragm pump pipeline connection mechanism (5) comprises a connection mechanism housing (51), a connection plate (52) is fixedly connected to the inner wall of one side of the connection mechanism housing (51) close to the pipeline connection outer plate (43), and the inner wall of the connection mechanism housing (51) is of hollow design.
9. The pneumatic diaphragm pump for cleaning agent processing according to claim 8, characterized in that: The adapter plate (52) includes an adapter plate body (521), and an adapter plate slide groove (522) is provided in a circular array on one side of the adapter plate body (521) close to the pipeline connection outer plate (43). A hydraulic push rod (523) is fixedly connected to the side of the adapter plate body (521) close to the pipeline connection outer plate (43), and a push-pull tube (524) is fixedly connected to the top of the hydraulic push rod (523), and a push-pull tube rotating rod (525) is rotatably connected to the bottom of the outer wall of the push-pull tube (524) in a circular array.
10. The pneumatic diaphragm pump for cleaning agent processing according to claim 9, characterized in that: The push-pull tube rotating rods (525) are rotatably connected to the push-pull columns (526) on the side away from the push-pull tube (524); the push-pull columns (526) are extended to the outer wall of the connecting plate body (521) at one end away from the push-pull tube rotating rod (525) and are fixedly connected to the expansion vertical plate (527); the inner side of the expansion vertical plates (527) is fixedly connected to the expansion rod (528) on the side away from the connecting plate body (521); the inner sides of the expansion rods (528) are fixedly connected to the inner support plates (529).
Citation Information
Patent Citations
Pneumatic diaphragm pump for cleaning agent processing
CN220302307U